WO2019160364A1 - 무선 통신 시스템에서 무선 신호 송수신 방법 및 장치 - Google Patents
무선 통신 시스템에서 무선 신호 송수신 방법 및 장치 Download PDFInfo
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J11/00—Orthogonal multiplex systems, e.g. using WALSH codes
- H04J11/0069—Cell search, i.e. determining cell identity [cell-ID]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1812—Hybrid protocols; Hybrid automatic repeat request [HARQ]
- H04L1/1819—Hybrid protocols; Hybrid automatic repeat request [HARQ] with retransmission of additional or different redundancy
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1829—Arrangements specially adapted for the receiver end
- H04L1/1861—Physical mapping arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/18—Automatic repetition systems, e.g. Van Duuren systems
- H04L1/1829—Arrangements specially adapted for the receiver end
- H04L1/1864—ARQ related signaling
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT
- H04L5/0012—Hopping in multicarrier systems
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0044—Allocation of payload; Allocation of data channels, e.g. PDSCH or PUSCH
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
- H04L5/0055—Physical resource allocation for ACK/NACK
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signalling for the administration of the divided path, e.g. signalling of configuration information
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signalling for the administration of the divided path, e.g. signalling of configuration information
- H04L5/0094—Indication of how sub-channels of the path are allocated
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0446—Resources in time domain, e.g. slots or frames
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0453—Resources in frequency domain, e.g. a carrier in FDMA
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/12—Wireless traffic scheduling
- H04W72/1263—Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows
- H04W72/1268—Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows of uplink data flows
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/12—Wireless traffic scheduling
- H04W72/1263—Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows
- H04W72/1273—Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows of downlink data flows
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
- H04W72/232—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the physical layer, e.g. DCI signalling
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/69—Spread spectrum techniques
- H04B1/713—Spread spectrum techniques using frequency hopping
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J11/00—Orthogonal multiplex systems, e.g. using WALSH codes
- H04J11/0069—Cell search, i.e. determining cell identity [cell-ID]
- H04J11/0086—Search parameters, e.g. search strategy, accumulation length, range of search, thresholds
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
- H04J13/0007—Code type
- H04J13/0055—ZCZ [zero correlation zone]
- H04J13/0059—CAZAC [constant-amplitude and zero auto-correlation]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT
Definitions
- the present invention relates to a wireless communication system, and more particularly to a method and apparatus for transmitting and receiving wireless signals.
- Wireless communication systems are widely deployed to provide various kinds of communication services such as voice and data.
- a wireless communication system is a multiple access system capable of supporting communication with multiple users by sharing available system resources (bandwidth, transmission power, etc.).
- multiple access systems include code division multiple access (CDMA) systems, frequency division multiple access (FDMA) systems, time division multiple access (TDMA) systems, orthogonal frequency division multiple access (OFDMA) systems, and single carrier frequency (SC-FDMA). division multiple access) system.
- CDMA code division multiple access
- FDMA frequency division multiple access
- TDMA time division multiple access
- OFDMA orthogonal frequency division multiple access
- SC-FDMA single carrier frequency division multiple access
- An object of the present invention is to provide a method and an apparatus therefor for efficiently performing a wireless signal transmission and reception process.
- a method for transmitting control information by a communication device in a wireless communication system receiving indication information on a PUCCH resource set in a specific Physical Uplink Control Channel (PUCCH) format through system information, the PUCCH
- the set of resources comprises a first Resource Block (RB) offset;
- And transmitting the control information on a PUCCH wherein the RB index of the PUCCH is determined based on the first RB offset and a second RB offset associated with a first bit value of the RI, and the CS of the PUCCH.
- An index is provided based on a combination of a second bit value of the RI, a one bit value based on a starting CCE index of the PDCCH (hereinafter, a CCE-based one bit value) of a CS index set.
- a communication apparatus for use in a wireless communication system, comprising: a memory; And a processor, wherein the processor is configured to receive indication information regarding a PUCCH resource set of a specific Physical Uplink Control Channel (PUCCH) format through system information, wherein the PUCCH resource set includes a first resource block (RB) offset And receive a physical downlink control channel (PDCCH) including resource indication information (RI) on at least one control channel element (CCE), and transmit control information through a PUCCH, wherein the RB index of the PUCCH Is determined based on a 1 RB offset and a second RB offset associated with a first bit value of the RI, wherein the CS index of the PUCCH is based on [the second bit value of the RI, based on a starting CCE index of the PDCCH;
- a communication device is provided that is determined based on a combination of one bit value (hereafter CCE-based one bit value).
- a method for receiving communication information by a communication device in a wireless communication system transmitting indication information regarding a PUCCH resource set of a specific Physical Uplink Control Channel (PUCCH) format through system information
- the PUCCH resource set includes a first RB offset; Transmitting a physical downlink control channel (PDCCH) including resource indication information (RI) on at least one control channel element (CCE); And receiving the control information via a PUCCH, wherein an RB index of the PUCCH is determined based on the first RB offset and a second RB offset associated with a first bit value of the RI, and the CS of the PUCCH.
- An index is provided based on a combination of a second bit value of the RI, a one bit value based on a starting CCE index of the PDCCH (hereinafter, a CCE-based one bit value) of a CS index set.
- a communication apparatus for use in a wireless communication system, comprising: a memory; And a processor, wherein the processor transmits indication information about a PUCCH resource set in a specific Physical Uplink Control Channel (PUCCH) format through system information, wherein the PUCCH resource set includes a first RB offset And transmit a physical downlink control channel (PDCCH) including resource indication information (RI) on at least one control channel element (CCE), and receive control information through a PUCCH, wherein the RB index of the PUCCH is Is determined based on a 1 RB offset and a second RB offset associated with a first bit value of the RI, wherein the CS index of the PUCCH is based on [the second bit value of the RI, based on a starting CCE index of the PDCCH;
- a communication device is provided that is determined based on a combination of one bit value (hereafter CCE-based one bit value).
- the second bit value of the RI may be used to indicate one of two CS index groups, and the CCE-based one bit value may be used to indicate one of two CS indexes in the indicated CS index group. .
- the frequency hopping direction of the PUCCH may be determined to be one of two based on the third bit value of the RI.
- the second RB offset, the CS index and the frequency hopping direction for the PUCCH may be determined to satisfy the following table:
- b 2 represents the first bit value of the RI
- b 1 represents the third bit value of the RI
- b 0 represents the second bit value of the RI
- b 2 to b 0 and the RI
- the relationship of the first to third bit values may be changed.
- control information may include Acknowledgment / Negative Acknowledgment (ACK / NACK) for downlink data scheduled by the PDCCH.
- ACK / NACK Acknowledgment / Negative Acknowledgment
- FIG. 1 illustrates physical channels used in a 3GPP system, which is an example of a wireless communication system, and a general signal transmission method using the same.
- FIG. 2 illustrates a structure of a radio frame.
- 3 illustrates a resource grid of a slot.
- FIG. 5 shows an example where a physical channel is mapped within a self-serving slot.
- FIG. 6 illustrates a beam-based initial access procedure
- FIG. 14 illustrates a base station and a terminal that can be applied to the present invention.
- CDMA code division multiple access
- FDMA frequency division multiple access
- TDMA time division multiple access
- OFDMA orthogonal frequency division multiple access
- SC-FDMA single carrier frequency division multiple access
- CDMA may be implemented with a radio technology such as Universal Terrestrial Radio Access (UTRA) or CDMA2000.
- TDMA may be implemented with wireless technologies such as Global System for Mobile communications (GSM) / General Packet Radio Service (GPRS) / Enhanced Data Rates for GSM Evolution (EDGE).
- GSM Global System for Mobile communications
- GPRS General Packet Radio Service
- EDGE Enhanced Data Rates for GSM Evolution
- OFDMA may be implemented in a wireless technology such as IEEE 802.11 (Wi-Fi), IEEE 802.16 (WiMAX), IEEE 802-20, Evolved UTRA (E-UTRA).
- UTRA is part of the Universal Mobile Telecommunications System (UMTS).
- 3rd Generation Partnership Project (3GPP) long term evolution (LTE) is part of Evolved UMTS (E-UMTS) using E-UTRA and LTE-A (Advanced) is an evolved version of 3GPP LTE.
- 3GPP NR New Radio or New Radio Access Technology is an evolution of 3GPP LTE / LTE-A.
- next-generation communication As more communication devices demand larger communication capacities, there is a need for improved mobile broadband communication compared to the existing radio access technology (RAT).
- massive MTC Machine Type Communications
- massive MTC Machine Type Communications
- URLLC Ultra-Reliable and Low Latency Communication
- a terminal receives information through a downlink (DL) from a base station, and the terminal transmits information through an uplink (UL) to the base station.
- the information transmitted and received between the base station and the terminal includes data and various control information, and various physical channels exist according to the type / use of the information transmitted and received.
- FIG. 1 is a diagram for explaining physical channels used in a 3GPP NR system and a general signal transmission method using the same.
- the terminal which is powered on again or enters a new cell while the power is turned off performs an initial cell search operation such as synchronizing with the base station in step S101.
- the UE receives a Primary Synchronization Channel (P-SCH) and a Secondary Synchronization Channel (S-SCH) from the base station, synchronizes with the base station, and provides information such as a cell identity. Acquire.
- the terminal may receive a physical broadcast channel (PBCH) from the base station to obtain broadcast information in a cell.
- PBCH physical broadcast channel
- the terminal may check a downlink channel state by receiving a downlink reference signal (DL RS) in an initial cell search step.
- DL RS downlink reference signal
- the UE After completing the initial cell discovery, the UE receives a physical downlink control channel (PDSCH) according to physical downlink control channel (PDCCH) and physical downlink control channel information in step S102 to be more specific.
- PDSCH physical downlink control channel
- PDCCH physical downlink control channel
- System information can be obtained.
- the terminal may perform a random access procedure such as steps S103 to S106 to complete the access to the base station.
- the UE transmits a preamble through a physical random access channel (PRACH) (S103), a response message to the preamble through a physical downlink control channel and a corresponding physical downlink shared channel. Can be received (S104).
- contention resolution procedure such as transmission of an additional physical random access channel (S105) and reception of a physical downlink control channel and a corresponding physical downlink shared channel (S106). ) Can be performed.
- the UE After performing the above-described procedure, the UE performs a general downlink control channel / physical downlink shared channel reception (S107) and a physical uplink shared channel (PUSCH) / as a general uplink / downlink signal transmission procedure.
- Physical uplink control channel (PUCCH) transmission (S108) may be performed.
- the control information transmitted from the terminal to the base station is collectively referred to as uplink control information (UCI).
- UCI includes Hybrid Automatic Repeat and reQuest Acknowledgment / Negative-ACK (HARQ ACK / NACK), Scheduling Request (SR), Channel State Information (CSI), and the like.
- HARQ ACK / NACK Hybrid Automatic Repeat and reQuest Acknowledgment / Negative-ACK
- SR Scheduling Request
- CSI Channel State Information
- the CSI includes a Channel Quality Indicator (CQI), a Precoding Matrix Indicator (PMI), a Rank Indication (RI), and the like.
- CQI Channel Quality Indicator
- PMI Precoding Matrix Indicator
- RI Rank Indication
- UCI is generally transmitted through PUCCH, but may be transmitted through PUSCH when control information and traffic data should be transmitted at the same time. In addition, the UCI may be aperiodically transmitted through the PUSCH by the request / instruction of the network.
- each radio frame has a length of 10 ms and is divided into two 5 ms half-frames (HFs). Each half-frame is divided into five 1 ms subframes (SFs). The subframe is divided into one or more slots, and the number of slots in the subframe depends on the subcarrier spacing (SCS).
- SCS subcarrier spacing
- Each slot includes 12 or 14 Orthogonal Frequency Division Multiplexing (OFDM) symbols according to a cyclic prefix (CP). If a normal CP is used, each slot contains 14 OFDM symbols. If extended CP is used, each slot includes 12 OFDM symbols.
- OFDM Orthogonal Frequency Division Multiplexing
- Table 1 exemplarily shows that when the CP is used, the number of symbols per slot, the number of slots per frame, and the number of slots per subframe vary according to the SCS.
- Table 2 illustrates that when the extended CP is used, the number of symbols for each slot, the number of slots for each frame, and the number of slots for each subframe vary according to the SCS.
- the structure of the frame is merely an example, and the number of subframes, the number of slots, and the number of symbols in the frame may be variously changed.
- OFDM numerology may be set differently between a plurality of cells merged into one UE.
- the (absolute time) section of a time resource eg, SF, slot, or TTI
- a time unit e.g. a time unit (TU) for convenience
- the symbol may include an OFDM symbol (or CP-OFDM symbol), SC-FDMA symbol (or Discrete Fourier Transform-spread-OFDM, DFT-s-OFDM symbol).
- the slot includes a plurality of symbols in the time domain. For example, one slot includes 14 symbols in the case of a normal CP, but one slot includes 12 symbols in the case of an extended CP.
- the carrier includes a plurality of subcarriers in the frequency domain.
- Resource block (RB) is defined as a plurality of consecutive subcarriers (eg, 12) in the frequency domain.
- the bandwidth part (BWP) is defined as a plurality of consecutive physical RBs (PRBs) in the frequency domain and may correspond to one numerology (eg, SCS, CP length, etc.).
- the carrier may include up to N (eg, 5) BWPs. Data communication is performed through an activated BWP, and only one BWP may be activated by one UE.
- Each element in the resource grid is referred to as a resource element (RE), one complex symbol may be mapped.
- RE resource element
- a frame is characterized by a self-complete structure in which a DL control channel, DL or UL data, UL control channel, and the like can be included in one slot.
- the first N symbols in a slot may be used to transmit a DL control channel (hereinafter DL control region), and the last M symbols in the slot may be used to transmit a UL control channel (hereinafter UL control region).
- N and M are each an integer of 0 or more.
- a resource region hereinafter, referred to as a data region
- the DL control region and the UL control region may be used for DL data transmission or may be used for UL data transmission.
- Each interval is listed in chronological order.
- DL area (i) DL data area, (ii) DL control area + DL data area
- UL region (i) UL data region, (ii) UL data region + UL control region
- the PDCCH may be transmitted in the DL control region, and the PDSCH may be transmitted in the DL data region.
- PUCCH may be transmitted in the UL control region, and PUSCH may be transmitted in the UL data region.
- the GP provides a time gap in the process of the base station and the terminal switching from the transmission mode to the reception mode or from the reception mode to the transmission mode. Some symbols at the time of switching from DL to UL in the subframe may be set to GP.
- the PDCCH carries Downlink Control Information (DCI).
- DCI Downlink Control Information
- DL-SCH downlink shared channel
- UL-SCH uplink shared channel
- PCH paging information for a paging channel
- It carries system information on the DL-SCH, resource allocation information for higher layer control messages such as random access response transmitted on the PDSCH, transmission power control command, activation / deactivation of configured scheduling (CS), and the like.
- DCI includes a cyclic redundancy check (CRC), which is masked / scrambled with various identifiers (eg, Radio Network Temporary Identifier, RNTI) according to the owner of PDCCH or the intended use. For example, if the PDCCH is for a specific terminal, the CRC is masked with a terminal identifier (eg, Cell-RNTI, C-RNTI). If the PDCCH is about paging, the CRC is masked with P-RNTI (Paging-RNTI). If the PDCCH relates to system information (eg, System Information Block, SIB), the CRC is masked with a System Information RNTI (SI-RNTI). If the PDCCH is for a random access response, the CRC is masked with a Random Access-RNTI (RA-RNTI).
- CRC cyclic redundancy check
- the PDCCH is composed of 1, 2, 4, 8, and 16 CCEs (Control Channel Elements) according to an aggregation level (AL).
- CCE is a logical allocation unit used to provide a PDCCH of a predetermined code rate according to a radio channel state.
- CCE consists of six Resource Element Groups (REGs).
- REG is defined by one OFDM symbol and one (P) RB.
- the PDCCH is transmitted through a CORESET (Control Resource Set).
- CORESET is defined as a set of REGs with a given pneumonology (eg, SCS, CP length, etc.).
- a plurality of CORESET for one terminal may be overlapped in the time / frequency domain.
- CORESET may be set through system information (eg, Master Information Block, MIB) or UE-specific higher layer (eg, Radio Resource Control, RRC, layer) signaling. Specifically, the number of RBs and the number of OFDM symbols (maximum three) constituting CORESET may be set by higher layer signaling.
- system information eg, Master Information Block, MIB
- UE-specific higher layer eg, Radio Resource Control, RRC, layer
- RRC Radio Resource Control
- the number of RBs and the number of OFDM symbols (maximum three) constituting CORESET may be set by higher layer signaling.
- the UE monitors PDCCH candidates.
- the PDCCH candidate represents CCE (s) that the UE should monitor for PDCCH detection.
- Each PDCCH candidate is defined as 1, 2, 4, 8, 16 CCEs according to AL.
- Monitoring includes (blind) decoding PDCCH candidates.
- the set of PDCCH candidates monitored by the UE is defined as a PDCCH search space (SS).
- the search space includes a common search space (CSS) or a UE-specific search space (USS).
- the UE may acquire the DCI by monitoring the PDCCH candidate in one or more search spaces set by MIB or higher layer signaling.
- Each CORESET is associated with one or more search spaces, and each search space is associated with one COREST.
- the search space can be defined based on the following parameters.
- controlResourceSetId indicates a CORESET associated with the search space
- monitoringSlotPeriodicityAndOffset indicates the PDCCH monitoring interval (in slots) and the PDCCH monitoring interval offset (in slots).
- monitoringSymbolsWithinSlot represents the PDCCH monitoring symbol in the slot (e.g., the first symbol (s) of CORESET)
- An opportunity (eg, time / frequency resource) to monitor PDCCH candidates is defined as a PDCCH (monitoring) opportunity.
- PDCCH monitoring
- One or more PDCCH (monitoring) opportunities may be configured in the slot.
- Table 3 illustrates the features of each search space type.
- Type Search space RNTI Use case Type0-PDCCH Common SI-RNTI on a primary cell SIB Decoding Type0A-PDCCH Common SI-RNTI on a primary cell SIB Decoding Type1-PDCCH Common RA-RNTI or TC-RNTI on a primary cell Msg2, Msg4 decoding in RACH Type2-PDCCH Common P-RNTI on a primary cell Paging Decoding Type3-PDCCH Common INT-RNTI, SFI-RNTI, TPC-PUSCH-RNTI, TPC-PUCCH-RNTI, TPC-SRS-RNTI, C-RNTI, MCS-C-RNTI, or CS-RNTI (s) UE Specific C-RNTI, or MCS-C-RNTI, or CS-RNTI (s) User specific PDSCH decoding
- Table 4 illustrates the DCI formats transmitted on the PDCCH.
- DCI format 0_0 is used for scheduling TB-based (or TB-level) PUSCH
- DCI format 0_1 is TB-based (or TB-level) PUSCH or Code Block Group (CBG) -based (or CBG-level) PUSCH It can be used to schedule.
- DCI format 1_0 is used for scheduling TB-based (or TB-level) PDSCH
- DCI format 1_1 is used for scheduling TB-based (or TB-level) PDSCH or CBG-based (or CBG-level) PDSCH.
- DCI format 0_0 / 0_1 may be referred to as UL grant DCI or UL scheduling information
- DCI format 1_0 / 1_1 may be referred to as DL grant DCI or UL scheduling information
- DCI format 2_0 is used to deliver dynamic slot format information (eg, dynamic SFI) to the UE
- DCI format 2_1 is used to deliver downlink pre-Emption information to the UE.
- DCI format 2_0 and / or DCI format 2_1 may be delivered to UEs in a corresponding group through a group common PDCCH, which is a PDCCH delivered to UEs defined as one group.
- DCI format 0_0 and DCI format 1_0 may be referred to as a fallback DCI format
- DCI format 0_1 and DCI format 1_1 may be referred to as a non-fallback DCI format.
- the fallback DCI format remains the same in the DCI size / field configuration regardless of the UE setting.
- the non-fallback DCI format the DCI size / field configuration varies according to UE configuration.
- PDSCH carries downlink data (eg, DL-SCH transport block, DL-SCH TB), and modulation methods such as Quadrature Phase Shift Keying (QPSK), 16 Quadrature Amplitude Modulation (QAM), 64 QAM, and 256 QAM are applied. do.
- QPSK Quadrature Phase Shift Keying
- QAM 16 Quadrature Amplitude Modulation
- a codeword is generated by encoding the TB.
- the PDSCH can carry a maximum of two codewords. Scrambling and modulation mapping are performed for each codeword, and modulation symbols generated from each codeword may be mapped to one or more layers. Each layer is mapped to a resource together with a DMRS (Demodulation Reference Signal) to generate an OFDM symbol signal, and is transmitted through a corresponding antenna port.
- DMRS Demodulation Reference Signal
- UCI Uplink Control Information
- SR Service Request: Information used to request a UL-SCH resource.
- HARQ (Hybrid Automatic Repeat reQuest) -ACK (Acknowledgement): A response to a downlink data packet (eg, a codeword) on a PDSCH. Indicates whether the downlink data packet was successfully received.
- One bit of HARQ-ACK may be transmitted in response to a single codeword, and two bits of HARQ-ACK may be transmitted in response to two codewords.
- HARQ-ACK responses include positive ACK (simply ACK), negative ACK (NACK), DTX or NACK / DTX.
- HARQ-ACK is mixed with HARQ ACK / NACK, ACK / NACK.
- CSI Channel State Information
- MIMO Multiple Input Multiple Output
- RI rank indicator
- PMI precoding matrix indicator
- Table 5 illustrates the PUCCH formats. According to the PUCCH transmission length may be divided into Short PUCCH (format 0, 2) and Long PUCCH (format 1, 3, 4).
- PUCCH format 0 carries a UCI of a maximum size of 2 bits, and is mapped and transmitted on a sequence basis. Specifically, the terminal transmits one sequence of the plurality of sequences through the PUCCH of PUCCH format 0 to transmit a specific UCI to the base station. Only when a positive SR is transmitted, the UE transmits a PUCCH having a PUCCH format 0 in a PUCCH resource for corresponding SR configuration.
- PUCCH format 1 carries UCI of up to two bits in size, and modulation symbols are spread by an orthogonal cover code (OCC) that is set differently depending on whether frequency hopping is performed in the time domain.
- OCC orthogonal cover code
- the DMRS is transmitted in a symbol in which a modulation symbol is not transmitted (ie, transmitted by time division multiplexing (TDM)).
- PUCCH format 2 carries UCI of a bit size larger than 2 bits, and modulation symbols are transmitted by DMRS and Frequency Division Multiplexing (FDM).
- the DM-RS is located at symbol indexes # 1, # 4, # 7 and # 10 in a given resource block with a density of 1/3.
- PN Pulseudo Noise sequence is used for DM_RS sequence.
- Frequency hopping may be enabled for two symbol PUCCH format 2.
- PUCCH format 3 is not UE multiplexed in the same physical resource blocks and carries a UCI having a bit size larger than 2 bits.
- the PUCCH resource of PUCCH format 3 does not include an orthogonal cover code.
- the modulation symbol is transmitted by time division multiplexing (DMD) with DMRS.
- PUCCH format 4 supports multiplexing up to 4 terminals in the same physical resource block, and carries UCI of a bit size larger than 2 bits.
- the PUCCH resource in PUCCH format 3 includes an orthogonal cover code.
- the modulation symbol is transmitted by time division multiplexing (DMD) with DMRS.
- PUSCH carries uplink data (eg, UL-SCH transport block, UL-SCH TB) and / or uplink control information (UCI), and uses a Cyclic Prefix-Orthogonal Frequency Division Multiplexing (CP-OFDM) waveform or It is transmitted based on a Discrete Fourier Transform-spread-Orthogonal Frequency Division Multiplexing (DFT-s-OFDM) waveform.
- DFT-s-OFDM Discrete Fourier Transform-spread-Orthogonal Frequency Division Multiplexing
- the terminal transmits the PUSCH by applying transform precoding.
- the UE transmits a PUSCH based on the CP-OFDM waveform
- conversion precoding eg, transform precoding is enabled
- the terminal is CP- PUSCH may be transmitted based on an OFDM waveform or a DFT-s-OFDM waveform.
- PUSCH transmissions are dynamically scheduled by UL grants in DCI or semi-static based on higher layer (eg RRC) signaling (and / or Layer 1 (L1) signaling (eg PDCCH)). Can be scheduled (configured grant).
- PUSCH transmission may be performed based on codebook or non-codebook.
- PUCCH format 0 consists of one PRB on the frequency axis and one or two OFDM-based symbols on the time axis.
- PUCCH format 0 consists of only a sequence corresponding to a UCI signal without DMRS.
- UCI information may be transmitted by selecting and transmitting one of a plurality of sequences.
- a plurality of sequences transmitted through PUCCH format 0 are distinguished by a CS (Cyclic Shift), and a CS index may vary according to UCI information.
- CS index 0 may be used when the value of 1-bit UCI is 0
- CS index 6 may be used when the value of 1-bit UCI is 1.
- one terminal may use one of ⁇ CS index X, CS index X + 6 ⁇ to transmit 1-bit UCI information.
- X may have a value of 0 to 5 and may be referred to as an initial CS index.
- FIG. PUCCH format 1 consists of one PRB on the frequency axis and 4 to 14 OFDM-based symbols on the time axis.
- DMRS and UCI are configured / mapped in different symbols in TDM format.
- a DMRS sequence of length 12 may be mapped to a DMRS symbol.
- the UCI symbol is mapped to a specific sequence of length 12 multiplied by the UCI modulation (eg QPSK) symbol.
- the specific sequence may include a CG-CAZAC (Computer-Generated Constant Amplitude Zero Auto Correlation) sequence of length 12.
- PUCCH format 1 multiple terminals may be multiplexed in the same PRB by applying CS (frequency domain code) / OCC (time domain spreading code) to both UCI and DMRS.
- Frequency Hopping FH
- FH Frequency Hopping
- CS frequency domain code
- OCC time domain spreading code
- FH Frequency Hopping
- the symbols of PUCCH format 1 are transmitted in the same PRB.
- the symbols of the PUCCH format 1 may be transmitted in the first half and the second half different PRB. For example, when FH is applied, (1) PUCCH is transmitted in a PRB at the top of the UL band in the first frequency hop and PUCCH is transmitted in a PRB at the bottom of the UL band in the second frequency hop.
- the PUCCH may be transmitted in the lower PRB in the UL band, and in the second frequency hop, the PUCCH may be transmitted in the upper PRB in the UL band.
- a reference signal may be transmitted using beam-forming.
- beams in order to transmit and receive signals, beams must be aligned / managed between the base station and the terminal.
- RRC Radio Resource Control
- beam alignment may be performed based on SSB.
- beam alignment in the RRC CONNECTED mode may be performed based on CSI-RS (in DL) and SRS (in UL).
- the base station may periodically transmit the SSB (S702).
- SSB includes PSS / SSS / PBCH.
- SSB may be transmitted using beam sweeping.
- the base station can transmit the RMSI (Remaining Minimum System Information) and OSI (Other System Information) (S704).
- the RMSI may include information (eg, PRACH configuration information) necessary for the terminal to initially access the base station.
- the terminal identifies the best SSB after performing SSB detection.
- the terminal may transmit the RACH preamble (Message 1, Msg1) to the base station by using the PRACH resources linked / corresponding to the index (ie, beam) of the best SSB (S706).
- the beam direction of the RACH preamble is associated with a PRACH resource.
- the association between the PRACH resource (and / or RACH preamble) and the SSB (index) may be established through system information (eg, RMSI).
- RMSI system information
- the base station transmits a random access response (RAR) (Msg2) in response to the RACH preamble (S708).
- RAR random access response
- the scheduling information for the random access response message may be CRC masked with a random access-RNTI (RA-RNTI) and transmitted on the L1 / L2 control channel (PDCCH).
- RA-RNTI random access-RNTI
- PDCCH L1 / L2 control channel
- the PDCCH masked with the RA-RNTI may be transmitted only through a common search space.
- the UE may receive a random access response message from the PDSCH indicated by the scheduling information. Thereafter, the terminal checks whether there is random access response information indicated to the random access response message. Whether the random access response information indicated to the presence of the self may be determined by whether there is a random access preamble ID (RAID) for the preamble transmitted by the terminal.
- the random access response information includes timing offset information (eg, Timing Advance Command, TAC), UL scheduling information (eg, UL grant), and UE temporary identification information (eg, Temporary-C-RNTI, TC-RNTI) for UL synchronization. Include.
- the UE may transmit Msg3 (eg, RRC Connection Request) through the PUCCH by using a UL grant in the RAR (S710).
- Msg3 may include a UE identity for contention resolution.
- the base station may transmit a collision resolution message (Msg4) (S720).
- Msg4 may include an RRC Connection Setup.
- the terminal may detect a PDCCH in slot #n.
- the PDCCH includes downlink scheduling information (eg, DCI formats 1_0 and 1_1), and the PDCCH indicates a DL assignment-to-PDSCH offset (K0) and a PDSCH-HARQ-ACK reporting offset (K1).
- the DCI formats 1_0 and 1_1 may include the following information.
- Frequency domain resource assignment indicates the RB set allocated to the PDSCH
- Time domain resource assignment K0, which indicates the start position (eg OFDM symbol index) and length (eg number of OFDM symbols) of the PDSCH in the slot.
- PDSCH-to-HARQ_feedback timing indicator indicates K1
- the UE may transmit UCI through PUCCH in slot # (n + K1).
- the UCI includes a HARQ-ACK response to the PDSCH.
- the HARQ-ACK response may be configured with 1-bit.
- the HARQ-ACK response may consist of two bits if spatial bundling is not configured, and one bit if spatial bundling is configured.
- the UCI transmitted in slot # (n + K1) includes HARQ-ACK responses for the plurality of PDSCHs.
- Embodiment PUCCH Resource Allocation
- UCI is transmitted on PUCCH.
- UCI includes HARQ-ACK, SR, CSI and the like.
- the base station sets a plurality of PUCCH resource sets to the terminal, and the terminal selects a specific PUCCH resource set corresponding to a specific range according to a range of UCI (payload) size (eg, the number of UCI bits). You can choose.
- the UE may select one of the following PUCCH resource sets according to the number of UCI bits (N UCI ).
- the PUCCH resource set represents a UE-dedicated (or UE-specific) PUCCH resource set.
- the UE-only PUCCH resource set may be configured as part of an RRC connection process or through UE-specific higher layer (eg, RRC) signaling after the RRC connection process is completed.
- PUCCH resource set # 1 if 2 ⁇ number of UCI bits ⁇ N 1
- K represents the number of PUCCH resource sets (K> 1)
- N i is the maximum number of UCI bits supported by PUCCH resource set #i.
- PUCCH resource set # 1 may be configured of resources of PUCCH formats 0-1, and other PUCCH resource sets may be configured of resources of PUCCH formats 2-4 (see Table 5).
- the base station transmits the DCI to the terminal through the PDCCH, and may indicate the PUCCH resource to be used for UCI transmission in a specific PUCCH resource set through ACK (ACK / NACK Resource Indicator) in the DCI.
- the ARI is used to indicate a PUCCH resource for ACK / NACK transmission and may be referred to as a PRI (PUCCH Resource Indicator).
- DCI is DCI used for PDSCH scheduling, and UCI may include HARQ-ACK for PDSCH.
- a method of explicitly indicating a specific PUCCH resource in a PUCCH resource set in an ARI is called a one-step PUCCH Resource Allocation (RA) method.
- RA PUCCH Resource Allocation
- the base station may set a PUCCH resource set including more than the number of states (ARI) that can be represented by the ARI to the terminal using a (terminal-specific) higher layer (eg, RRC) signal.
- the ARI indicates a PUCCH resource sub-set in the PUCCH resource set, and transmission resource information for the PDSCH and / or the PDCCH (eg, starting PDSCH) to determine which PUCCH resource is used in the indicated PUCCH resource sub-set. ) May be determined according to an implicit rule based on the PRB index, the starting CCE index of the PDCCH, and the like.
- a method of indicating a PUCCH resource sub-set to an ARI and determining a specific PUCCH resource according to an implicit rule within the indicated PUCCH resource sub-set is called a two-stage PUCCH RA method.
- a PUCCH resource may mean a physical resource configured of at least one of the following: For example, (OFDM) symbol position at which PUCCH transmission is started, time interval or number of symbols for continuing PUCCH transmission, and frequency axis resource allocation information (Eg, starting position of (P) RB allocated resource and number of (P) RBs allocated), frequency hopping, CS (Cyclic Shift) index and / or Orthogonal Cover Code (OCC) index / length, etc.
- OFDM OFDM
- time interval or number of symbols for continuing PUCCH transmission For example, (OFDM) symbol position at which PUCCH transmission is started, time interval or number of symbols for continuing PUCCH transmission, and frequency axis resource allocation information (Eg, starting position of (P) RB allocated resource and number of (P) RBs allocated), frequency hopping, CS (Cyclic Shift) index and / or Orthogonal Cover Code (OCC) index / length, etc.
- OFDM Orthogonal Cover Code
- PUCCH resources may be classified according to PUCCH formats as follows.
- PUCCH resource set represents a set in which element (s) in the set correspond to one PUCCH resource.
- PUCCH resource set ⁇ PUCCH resource # 0, PUCCH resource # 1, ..., PUCCH resource # (K-1) ⁇ .
- the PUCCH resource set may consist of K individual PUCCH resources.
- the PUCCH resource set may be comprised of PUCCH-related variable (s) that may be used to identify / define a plurality of PUCCH resources. In this case, K PUCCH resources may be identified / defined based on the PUCCH-related variable (s).
- PUCCH Resource Subset Represents a sub-set of the PUCCH resource set.
- PUCCH resource set ⁇ PUCCH resource sub-set # 0, PUCCH resource sub-set # 1, ..., PUCCH resource sub-set # (L-1) ⁇ .
- the PUCCH resource sub-set may consist of one or more, preferably a plurality of PUCCH resources.
- DCI scheduling PDSCH DCI scheduling PDSCH (see FIG. 7). For example, it includes DCI format 1_0 and DCI format 1_1. DCI is transmitted on the PDCCH.
- Implicit Mapping Maps transmission resource information (eg, starting PRB index of PDSCH, starting CCE index of PDCCH, etc.) for PDSCH and / or PDCCH to Z bit values based on an implicit rule.
- Z can be one.
- the Z value may be determined as 0 or 1 according to which of the two CCE sets belongs to (eg, odd CCE set and even CCE set).
- Fallback DCI format Represents a DCI format in which DCI size / field configuration remains the same regardless of UE setting (eg, DCI format 1_0).
- Non-fallback DCI format Represents a DCI format in which DCI size / field configuration varies according to UE configuration (eg, DCI format 1_1).
- Semi-static HARQ-ACK codebook This means that the HARQ-ACK payload size to be reported by the UE is semi-statically set by a (terminal-specific) higher layer (eg, RRC) signal.
- a (terminal-specific) higher layer eg, RRC
- Dynamic HARQ-ACK Codebook This means that the HARQ-ACK payload size to be reported by the UE may be dynamically changed by DCI.
- the HARQ-ACK payload size can be dynamically changed by c-DAI (and t-DAI).
- -c-DAI counter Downlink Assignment Index
- DCI eg, DL scheduling DCI
- TB or CBG Code block group
- t-DAI total DAI: A specific index value in DCI (eg, DL scheduling DCI) indicating the total number of PDSCHs (or TBs or CBGs) to be reported for HARQ-ACK.
- the UE may determine the size of the HARQ-ACK payload based on t-DAI.
- Short PUCCH means a PUCCH having a transmission length of 1 to 2 symbols.
- PUCCH formats 0 and 2 correspond to Short PUCCH (see Table 5).
- Long PUCCH means a PUCCH having a transmission length of 4 to 14 symbols.
- PUCCH formats 1, 3, and 4 correspond to Long PUCCH (see Table 5).
- each proposal scheme will be described separately, but each proposal scheme can be combined and applied together unless they are mutually arranged with other proposal schemes of the present invention.
- a system band in one carrier is very large, and thus, the entire system band may not be used depending on the RF characteristics of the terminal. Therefore, the entire system band can be divided into a plurality of bandwidth parts (BWPs).
- BWP bandwidth parts
- a BWP is defined as a plurality of consecutive PRBs (Physical RBs) in the frequency domain and may correspond to one numerology (eg, SCS, CP length, etc.).
- the carrier may include up to N (eg, 5) BWPs. Data communication is performed through an activated BWP, and only one BWP may be activated by one UE.
- the base station when the base station indicates the HARQ-ACK transmission PUCCH resources corresponding to PDSCH transmission (PDSCH scheduling) DCI, the UL BWP valid at the time of receiving the PDSCH and the time of transmitting the HARQ-ACK transmission PUCCH resources corresponding to the PDSCH is changed. Cases may occur. In order to support the above operation, the base station needs to inform the BWP information in which the PUCCH resource is transmitted.
- the base station proposes a method of informing the terminal of the BWP information for a specific PUCCH resource by one or more of the following methods.
- (1) BWP information may be configured for each PUCCH resource. That is, when setting the PUCCH resources, it is possible to set the BWP information for transmitting the PUCCH for each PUCCH resource.
- the BWP for transmitting the PUCCH resource may be indicated by the DCI.
- the DCI may be (PDSCH scheduling) DCI or group-common DCI.
- the c-DAI may be used to configure HARQ-ACK payload when the UE transmits HARQ-ACK information corresponding to a plurality of PDSCHs using a single PUCCH resource. Meanwhile, if the UE is in a state before RRC connection setup after initial access, the UE may not perform an operation of transmitting HARQ-ACK for a plurality of PDSCHs using a single PUCCH resource.
- the PUCCH resource used before the RRC connection setup may be capable of transmitting only HARQ-ACK bits (eg, 1 bit at most) corresponding to a single PDSCH.
- field A for c-DAI in the (DL scheduling) DCI (eg, DCI format 1_0) (hereinafter, referred to as fallback DCI) performing a fallback operation
- the DCI size is fixed.
- Field A may always be present in the fallback DCI to maintain size.
- the field A may not be used for the DAI before the RRC connection setup, and thus may be used for other purposes. Therefore, in the present invention, when there is a field (hereinafter, B) for indicating PUCCH resource in (DL scheduling) DCI, the bit width of the field for PUCCH resource indication by adding field A to field B before RRC connection setup You can extend (width).
- field A and field B may be used for c-DAI use and PUCCH resource indication, respectively.
- a (terminal-specific) PUCCH resource set (more than K bits) that supports HARQ-ACK transmission for multiple PDSCHs is not configured for the UE (eg, K> 2)
- c-DAI may be used for other purposes. Can be. Therefore, before the (terminal-specific) PUCCH resource set is configured for the terminal, the bit width of the PUCCH resource indication field may be extended by adding field A to field B.
- field A and field B may be used for c-DAI use and PUCCH resource indication purpose, respectively.
- field A X1-bit field
- field B X2 bit-field
- the use of the field A and the field B may be different according to the following conditions. have.
- Field A is used for DAI (e.g. c-DAI) use
- Field B is used for PUCCH resource indication (in PUCCH resource set)
- Field A is used for DAI (e.g. c-DAI) use
- Field B is used for PUCCH resource indication (in PUCCH resource set)
- the number of resources in the PUCCH resource set before the RRC connection setup is proportional to the number of bits in field A or the number of states that field A can represent. More than the number of resources in the PUCCH resource set after connection setup (or after (terminal-specific) PUCCH resource set setting).
- bit (s) in DCI (hereinafter unused bit (s)) that are not used before the RRC connection setup may be used to provide additional information about the reference PUCCH resource.
- the reference PUCCH resource is system information (e.g., RMSI), PUCCH resource indicator (ARI or PRI) (in DCI) and / or (starting) CCE index-based without the aid of unused bit (s). ) May be a PUCCH resource determined by implicit mapping.
- the additional information may be one or more of the following.
- the UE may interpret that the unused bit (s) (in DCI) additionally indicate a start symbol offset for the reference PUCCH resource.
- the UE indicates whether the unused bit (s) (in DCI) is multi-slot transmission for the reference PUCCH resource (eg, '0': It can be interpreted as indicating a single-slot transmission; '1': multi-slot transmission).
- the number of slots constituting the multi-slot PUCCH may be defined as a minimum or maximum value (greater than 1) among configurable values.
- the unused bit (s) (in DCI) may indicate the number of slots that make up the PUCCH.
- the UE interprets that the unused bit (s) (in the DCI) indicate an additional offset with respect to the state indicated by the RMSI bit. can do. That is, the base station can change the PUCCH resource set through the unused bit (s).
- the size of HARQ-ACK bit (s) to be reported by the UE is 1-bit. If the HARQ-ACK payload size is fixed before the RRC connection setup, the c-DAI field configured in the DL scheduling DCI format may not be used (for dynamic change of the number of HARQ-ACK bit (s)).
- a (single-slot) PUCCH resource is indicated prior to the RRC connection setup with system information (e.g. RMSI), PUCCH resource indicator (ARI or PRI) (in DCI) and / or implicit mapping (CCE index-based in DCI).
- system information e.g. RMSI
- PUCCH resource indicator ARI or PRI
- CCE index-based in DCI e.g. SR or PRI
- c-DAI field may be used for giving additional information on (single-slot) PUCCH.
- the c-DAI field may provide one or more of the following information.
- PUCCH F0 / F1 PUCCH format 0/1 (hereinafter, PUCCH F0 / F1) resources.
- the variable specifying the PUCCH F0 / F1 resource may be a PUCCH transmission interval, a PUCCH transmission start symbol, a CS (Cyclic), an orthogonal cover code (OCC), a resource block (RB) (eg, a physical resource block, a PRB), and the like.
- step 1 2 X PUCCH resource sets are set as X -bit indicators in RMSI, and in step 2, Y-bits (eg, ARI, PRI) in DCI are set in the sub-PUCCH resource set (set in step 1).
- step 3 the PUCCH resource allocation process for indicating one PUCCH resource in the PUCCH resource sub-set (indicated in step 2) may be considered using an implicit mapping capable of representing the Z-state. The next consideration may be what parameters are determined for the PUCCH resource at each step.
- the PUCCH F0 / F1 resource may be configured as follows.
- Step 1 As an X-bit indicator in the system information, one of 2 X PUCCH resource sets (for PUCCH F0 / F1 resources) may be set to the UE.
- Each PUCCH resource set may limit the PUCCH duration (and / or PUCCH starting symbol) to a single value.
- the symbol may include an OFDM-based symbol (eg, an OFDM symbol or an SC-FDMA symbol).
- Each PUCCH resource set may limit the PUCCH transmission PRB resource to a specific PRB region.
- the PRB region may be proportional to the (initial) UL BWP bandwidth.
- the (initial) UL BWP may mean an (initial) UL band through which the UE transmits a PUCCH.
- the PRB region may be represented by the variable K and the frequency hopping (FH) direction.
- K may be a variable meaning that the PUCCH transmission PRB is separated by K PRBs from a band (eg, initial UL BWP) boundary.
- Different PUCCH resource sets may correspond to different PRB regions.
- Step 2 As a Y-bit field in DCI, one of 2 Y sub-sets in the PUCCH resource set (set in step 1) may be indicated to the UE.
- the value of the Y-bit field in the DCI may limit a PUCCH transmission CS (and / or OCC) resource to a single value.
- the value of the Y-bit field in the DCI may limit the PUCCH transmission PRB resource to a (smaller) specific PRB region.
- Step 3 An implicit mapping capable of Z-state representation may indicate one of the Z PUCCH resources in the PUCCH resource sub-set (indicated in step 2).
- Step 1 As an X-bit indicator in the system information, one of 2 X PUCCH resource sets (for PUCCH F0 / F1 resources) may be set to the UE.
- Each PUCCH resource set may limit the PUCCH transmission PRB resource to a specific PRB region.
- the PRB region may be proportional to the (initial) UL BWP bandwidth.
- the PRB region may be expressed in the variables K and FH directions.
- K may be a variable meaning that the PUCCH transmission PRB is separated by K PRBs from a band (eg, initial UL BWP) boundary.
- Different PUCCH resource sets may correspond to different PRB regions.
- Step 2 The UE may indicate one of 2 Y sub-sets in the PUCCH resource set (set in step 1) as a Y-bit bit field in DCI.
- the value of the Y-bit field in the DCI may limit the PUCCH interval (and / or PUCCH start symbol) to a single value.
- the value of the Y-bit field in the DCI may limit the PUCCH transmission CS (and / or OCC) resource to a single value.
- the value of the Y-bit field in the DCI may limit the PUCCH transmission PRB resource to a (smaller) specific PRB region.
- Step 3 An implicit mapping capable of Z-state representation may indicate one of the Z PUCCH resources in the PUCCH resource sub-set (indicated in step 2).
- system information may refer to RMSI (in NR system).
- the start symbol position of the PUCCH resource may be determined according to the PUCCH interval value.
- the OCC index of the PUCCH resource may be determined or predetermined according to a CS index value.
- X is a positive integer and may be 4, for example.
- Y is a positive integer and may be, for example 2.
- Z may be 1, and if greater than 1, the implicit indication may be expressed as a function of at least a CCE index (eg, a starting CCE index used for PDCCH transmission).
- the PUCCH resource may be packed with elements having good multiplexing. That is, the PUCCH interval and the PUCCH start symbol in each PUCCH resource set may be set identically (Opt. 1).
- the PUCCH interval may be dynamically changed by DCI (Opt. 2).
- the system information may include potential PRB resources in a variable K (e.g., a variable indicating that the PUCCH transmission PRB is K PRB apart from a band (e.g., an initial UL BWP) boundary) and a PUCCH resource that may be represented in a frequency hopping direction. Can be directed.
- K e.g., a variable indicating that the PUCCH transmission PRB is K PRB apart from a band (e.g., an initial UL BWP) boundary
- the number of candidate values for K may be fixed or change depending on the bandwidth of the initial UL BWP.
- step 2 when controlling UE multiplexing with DCI, the number of PRB resources available for FDM can be limited or changed, while the number of CS (and / or OCC) CDM-enabled can always be fixed to DCI.
- Full control of the CS / OCC values may be preferred.
- the CS indexes for PUCCH F0 and PUCCH F1 may be ⁇ 0, 3, 6, 9 ⁇ and ⁇ 0, 3 ⁇ .
- the DCI may indicate one of the CS values, and the OCC index may be implicitly determined by the CS index.
- an OCC index corresponding to (k mod OCC length) may correspond to a k-th CS index.
- the OCC index may have a predetermined value.
- one PUCCH resource among PUCCH resource candidates having a specific (single) CS value in a specific PRB region may be selected by an implicit mapping method. That is, one PRB resource among a plurality of PRB candidates can be selected.
- Table 7 illustrates the PUCCH resource sets indicated by the system information.
- one of 16 PUCCH resource sets may be indicated by a 4-bit indicator in the RMSI.
- the symbol ⁇ means frequency hopping in the high frequency direction at low frequency, and the symbol ⁇ means frequency hopping in the low frequency direction at high frequency.
- Table 8 illustrates the information indicated by the 2-bit ARI in the DCI for each of the case of PUCCH F0 and the case of PUCCH F1.
- K 1 and K 2 mean two K values set to RMSI for PUCCH F0, and L means an OCC length.
- Table 8 illustrates the information indicated by the 2-bit ARI in the DCI for each of the case of PUCCH F0 and the case of PUCCH F1.
- K 1 and K 2 mean two K values set to RMSI for PUCCH F0, and L means an OCC length.
- Table 9 shows an example of indicating the frequency hopping direction with 1-bit implicit mapping.
- the 1-bit implicit mapping may include mapping an index of the starting CCE to 0 or 1 among one or more CCEs used for PDCCH transmission.
- a combination of (CS, FH directions) may be designated by a specific bit field (eg, ARI) in DL grant DCI, and K value may be indicated by implicit mapping.
- CS indexes 0 and 3 may correspond to ACK and NACK (or NACK and ACK), respectively, or CS indexes 6 and 9 may correspond to ACK and NACK (or NACK and ACK), respectively.
- the CS index 0 and 6 (or 3 and 9) may correspond to the ACK.
- a combination of (CS, OCC) may be designated by a specific bit field (eg, ARI) in DL grant DCI, and the (K, FH direction) combination may be indicated by implicit mapping.
- the base station sets the PUCCH resource set (following PUCCH F0 or PUCCH F1) as system information to the terminal, and then UCI (eg, HARQ) in the PUCCH resource set.
- UCI eg, HARQ
- ACK PUCCH resources to be actually used for transmission may be informed as 1-bit information according to a 3-bit field in DCI and an implicit indication based on CCE index.
- the PUCCH resource set may refer to the above description.
- the DCI includes a DL grant DCI (eg, DCI formats 1_0 and 1_1).
- One of two PRB offsets may be indicated (1 bit).
- ii It may indicate one of two frequency hopping directions (1 bit).
- One of two starting symbol indices (in slot) may indicate (1 bit).
- the two starting symbol indices may be ⁇ 10, 12 ⁇ or ⁇ 11, 12 ⁇ .
- the symbol may include an OFDM-based symbol (eg, an OFDM symbol or an SC-FDMA symbol).
- One of two initial CS index values may be indicated (1 bit).
- two initial CS index values may be ⁇ 0, 3 ⁇ .
- One of two PRB offsets may be indicated (1 bit).
- ii It may indicate one of two frequency hopping directions (1 bit).
- One of two initial CS index groups may be indicated (1 bit).
- two initial CS index groups may be designated as ⁇ 0, 3 ⁇ and ⁇ 6, 9 ⁇ , or may be designated as ⁇ 0, 6 ⁇ and ⁇ 3, 9 ⁇ .
- CS index 0 or 3 may be indicated using a 1-bit implicit indication.
- the PRB offset may be used to indicate the number of PRBs from the end / boundary of a band (eg, initial UL BWP) through which the UE transmits the PUCCH to the PRB through which the PUCCH is transmitted.
- the (initial) UL BWP may mean an (initial) UL band through which the UE transmits a PUCCH.
- the index of the PUCCH PRB is (i) PRB offset, (ii) N BWP- 1-PRB offset. Can be given.
- the PRB offset indicated by DCI is referred to as PRB offset (DCI).
- the PRB offset (DCI) may be added to the cell-specific PRB offset (hereinafter, referred to as PRB offset (SI)) given by RMSI. That is, the index of the PUCCH PRB may be given as (i) PRB offset (SI) + PRB offset (DCI), and (ii) N BWP- 1-PRB offset (SI) -PRB offset (DCI).
- the PRB offset (DCI) may be ⁇ 0, 1 ⁇ .
- the initial CS index may mean a CS index resource that is a reference when transmitting UCI in PUCCH F0 or a CS index resource used for UCI transmission in PUCCH F1.
- the frequency hopping direction is (1) when transmitting the PUCCH in the upper PRB in the UL band in the first frequency hop (PUCCH) in the lower PRB in the UL band in the second frequency hop ( ⁇ ) And (2) when the first frequency hop transmits the PUCCH in the lower PRB in the UL band, and the second frequency hop transmits the PUCCH in the upper PRB in the UL band ( ⁇ ).
- the 1-bit implicit indication may be obtained by mapping the CCE index to a 1-bit value based on the implicit rule.
- an implicit 1-bit may indicate 0 or 1 depending on which of two CCE sets the starting CCE index of the PDCCH belongs to.
- Table 10 illustrates PUCCH resource sets indicated by system information.
- one of 16 PUCCH resource sets may be indicated by a 4-bit indicator in the RMSI.
- the symbol ⁇ means frequency hopping in the high frequency direction at low frequency, and the symbol ⁇ means frequency hopping in the low frequency direction at high frequency.
- N BWP is a value indicating the size of the (initial) UL BWP in the number of PRBs.
- Table 11 exemplifies information on the PRB offset, FH direction, start symbol index, and (initial) CS index group indicated by 3-bit ARI in DCI for PUCCH F0 and PUCCH F1, respectively.
- Table 12 shows an example of indicating a CS index by 1-bit implicit mapping.
- CS 1 and CS 2 mean a first CS index value and a second CS index value among two CS index candidates for PUCCH F1, respectively.
- the OCC index value of the PUCCH F1 may be determined by a specific function relationship according to the CS index value. For example, a value obtained by applying a modulo operation with an OCC length L to the CS index may be used as the OCC index.
- the OCC index value of the PUCCH F1 may have a predetermined value.
- Table 13 shows an example of combining Table 11 and Table 12.
- the PUCCH resource set is set by the 4-bit indicator of the RMSI
- the PUCCH resource actually used for UCI (eg, HARQ-ACK) transmission is 1-bit according to an implicit indication based on a 3-bit field and a CCE index in the DCI. Based on the information, it may be defined to satisfy the relationship of the following table.
- b 2 b 1 b 0 and ⁇ PRB offset, FH direction, CS index ⁇ may be changed.
- b 2 may be used to indicate the FH direction
- b 1 may be used to indicate the PRB offset.
- FIG. 10 illustrates a process of transmitting control information according to the present invention.
- the UE may receive indication information about a (cell-specific) PUCCH resource set through system information (S1002).
- the PUCCH resource set indicated by the system information may be related to a specific PUCCH format (eg, PUCCH format 1).
- System information includes RMSI.
- the UE may receive a PDCCH including resource indication information (RI) including PUCCH resource indication information (RI) on one or more CCEs (S1004).
- the PDCCH carries the DCI scheduling the PDSCH, and the RI may be included in the DCI.
- the terminal may transmit control information through the PUCCH.
- the PUCCH resource may be determined based on the (cell-specific) PUCCH resource set, RI and CCE index (S1006).
- the control information may include a HARQ-ACK for the PDSCH (ie, downlink data) scheduled by the PDCCH.
- FIG. 11 illustrates a control information determination process according to the present invention.
- the PUCCH resource may be determined through three steps.
- step 1 one of 2 X PUCCH resource sets may be configured to the UE as an X -bit indicator in the RMSI.
- step 2 one sub-set in the PUCCH resource set (set in step 1) may be indicated to the UE by 3-bit information (RI) in DCI.
- step 3 one PUCCH resource of the PUCCH resource sub-set (indicated in step 2) may be indicated to the UE by using an implicit 1-bit information based on an implicit rule, for example, CCE.
- steps 1 to 3 may be performed separately or in combination.
- the PUCCH resource may be determined using the proposed scheme (for example, Opt 1 to 2 and Tables 7 to 13).
- the PUCCH resource set may include a first RB offset
- the RB index of the PUCCH may be determined based on the first RB offset and the second RB offset associated with the first bit value of the RI.
- the CS index of the PUCCH may be determined based on a combination of [the second bit value of the RI, the one bit value based on the starting CCE index of the PDCCH (hereinafter, the CCE-based one bit value)) of the CS index sets.
- the second bit value of RI may be used to indicate one of two CS index groups, and the CCE-based 1 bit value may be used to indicate one of two CS indexes in the indicated CS index group.
- the frequency hopping direction of the PUCCH may be determined as one of two based on the third bit value of the RI.
- the second RB offset, CS index, and frequency hopping direction for the PUCCH may be determined to satisfy the relationship of the following table:
- b 2 represents a first bit value of RI
- b 1 represents a third bit value of RI
- b 0 represents a second bit value of RI
- b 2 to b 0 and the first to the second of RI
- the relationship of three bit values can be changed.
- the UE may set a (cell-specific) PUCCH resource set indicated by system information (eg, RMSI) (S1202). Thereafter, when determining the PUCCH resource, the process of determining the PUCCH resource may vary depending on whether the UE-specific PUCCH resource set (s) is configured (S1204).
- the UE may determine the PUCCH resource from the (cell-specific) PUCCH resource set. (S1206). Determining the PUCCH resource from the (cell-specific) PUCCH resource set may refer to the description of the proposed scheme (eg, FIGS.
- the UE may determine the PUCCH resources from the (terminal-only) PUCCH resource set (S1208). Since the (terminal-only) PUCCH resource set may be configured through the RRC connection setup process, the PUCCH resource determination of S1206 may be applied only to HARQ-ACK transmission for the PDSCH before the RRC connection setup. For example, the PUCCH resource determination of S1206 may be used only during HARQ-ACK transmission for PDSCH (eg, RACH Msg4) in the initial access procedure of the UE. On the other hand, the PUCCH resource determination of S1208 can be used during HARQ-ACK transmission for the PDSCH after the RRC connection setup, for example, HARQ-ACK transmission for the PDSCH after the initial access procedure.
- the PUCCH resource determination of S1208 can be used during HARQ-ACK transmission for the PDSCH after the RRC connection setup, for example, HARQ-ACK transmission for the PDSCH after the initial access procedure.
- Determining the PUCCH resource from the (terminal-only) PUCCH resource set may refer to FIG. 13.
- a base station sets a plurality of (terminal-only) PUCCH resource sets to a terminal, and the terminal corresponds to a specific PUCCH corresponding to a specific range according to a range of UCI (payload) size (eg, number of UCI bits). You can select a resource set.
- the base station transmits the DCI to the terminal through the PDCCH, and may indicate the PUCCH resources to be used for UCI transmission in a specific PUCCH resource set through the ARI in the DCI (see the above-described one-step PUCCH RA scheme).
- a PUCCH resource set consists of more than the number of states that an ARI can represent
- the ARI indicates a PUCCH resource sub-set within the PUCCH resource set, and any Whether to use the PUCCH resource may be determined according to an implicit rule based on a CCE index or the like (see the two-step PUCCH RA method described above).
- HARQ-ACK to be reported by UE in a situation in which PUCCH resource set is configured for each UCI payload size range (for example, UCI payload size A-2 bits or less; UCI payload size B-2 bits or more) for HARQ-ACK transmission
- the number of bits may be one or two.
- the terminal may receive a dynamic HARQ-ACK codebook and receive only a PDSCH having a 1-TB (Transport Block) and a DAI value of 1.
- the UE may transmit a 1-bit HARQ-ACK payload using a specific PUCCH resource.
- the base station may schedule two 1-TB PDSCHs, and the UE may not detect the second PDSCH.
- the base station expects the PUCCH transmission for the 2-bit HARQ-ACK payload, while the terminal performs the PUCCH transmission for the 1-bit HARQ-ACK payload, which may cause inconsistency between the base station and the terminal.
- the HARQ-ACK payload may always be configured with 2-bit even when the PDSCH received by the UE and the number of HARQ-ACK bits corresponding thereto are 1. Can be.
- the proposed operation may be more effective when only a PDSCH having 1-TB and a DAI value of 1 is received.
- a 2-bit HARQ-ACK payload may be configured (eg, ⁇ D, NACK ⁇ ).
- the PUCCH format for transmitting 2-bit HARQ-ACK is format 1, and four constellation points -1-j, -1 + j, 1 + j, and 1-j are ⁇ NACK, NACK ⁇ , Assume that it corresponds to ⁇ NACK, ACK ⁇ , ⁇ ACK, ACK ⁇ , ⁇ ACK, NACK ⁇ .
- the terminal may transmit 1-j corresponding to ⁇ ACK, NACK ⁇ .
- the PUCCH format for transmitting 2-bit HARQ-ACK is format 0, and the CS indexes 0, 3, 6, and 9 are respectively ⁇ NACK, NACK ⁇ , ⁇ NACK, ACK ⁇ , ⁇ ACK, ACK ⁇ , ⁇ ACK, NACK. ⁇ Assume that At this time, if D is ACK, the terminal may transmit a sequence corresponding to the CS index 9.
- the CS allocation (except the initial offset value) for PUCCH format 0 is set according to the UCI states of HARQ-ACK and SR as follows.
- 'N' is NACK
- 'A' is ACK
- 'N, N', 'N, A', 'A, A', 'A, N' are ⁇ NACK, NACK ⁇ , ⁇ NACK, ACK ⁇ , ⁇ ACK, ACK ⁇ , ⁇ ACK, NACK ⁇ .
- the terminal may differently apply HARQ-ACK to CS mapping according to a specific condition as follows.
- [HARQ-ACK to CS mapping # 1] of Table 16 may be applied.
- [HARQ-ACK to CS mapping # 2] of Table 17 may be applied.
- CS resources for HARQ-ACK and positive SR transmission may be obtained by applying a CS offset to CS resources for HARQ-ACK and negative SR transmission (for each HARQ-ACK state).
- [HARQ-ACK to CS mapping # 1] has the same CS resource used for ACK and ⁇ ACK, NACK ⁇ , and the same CS resource used for NACK and ⁇ NACK, NACK ⁇ . Therefore, when the base station transmits HARQ-ACK for two 1-TB PDSCHs, even if the UE misses receiving the second PDSCH, the HARQ-ACK response for the second PDSCH reception is naturally processed as NACK. However, [HARQ-ACK to CS mapping # 1] does not satisfy the gray encoding relationship for 2-bit HARQ-ACK, and thus the bit error rate (BER) performance is deteriorated.
- BER bit error rate
- [HARQ-ACK to CS mapping # 2] satisfies the gray encoding relationship for 2-bit HARQ-ACK, so that the BER performance is excellent, but the CS resources used for ACK and ⁇ ACK, NACK ⁇ are different. Accordingly, when the base station transmits HARQ-ACK for two 1-TB PDSCHs, if the terminal misses receiving the second PDSCH, a mismatch may occur between the terminal and the base station regarding HARQ-ACK information. Accordingly, when the terminal performs HARQ-ACK multiplexing (eg, when a dynamic HARQ-ACK codebook is set), [HARQ-ACK to CS mapping # 1] is applied, and otherwise, [HARQ-ACK to CS mapping]. # 2] can be applied.
- HARQ-ACK multiplexing eg, when a dynamic HARQ-ACK codebook is set
- FIG. 14 illustrates a base station and a terminal that can be applied to the present invention.
- a wireless communication system includes a base station (BS) 110 and a terminal (UE) 120.
- BS base station
- UE terminal
- the wireless communication system includes a relay
- the base station or the terminal may be replaced with a relay.
- Base station 110 includes a processor 112, a memory 114, and a radio frequency (RF) unit 116.
- the processor 112 may be configured to implement the procedures and / or methods proposed in the present invention.
- the memory 114 is connected to the processor 112 and stores various information related to the operation of the processor 112. Memory 114 may be part of a communication modem / chip in which processor 112 is used for 3GPP-based wireless communication (eg, NR).
- the RF unit 116 is connected with the processor 112 and transmits and / or receives a radio signal.
- the terminal 120 includes a processor 122, a memory 124, and a radio frequency unit 126.
- the processor 122 may be configured to implement the procedures and / or methods proposed by the present invention.
- the memory 124 is connected with the processor 122 and stores various information related to the operation of the processor 122.
- Memory 114 may be part of a communication modem / chip in which processor 112 is used for 3GPP-based wireless communication (eg, NR).
- the RF unit 126 is connected with the processor 122 and transmits and / or receives a radio signal.
- each component or feature is to be considered optional unless stated otherwise.
- Each component or feature may be embodied in a form that is not combined with other components or features. It is also possible to combine some of the components and / or features to form an embodiment of the invention.
- the order of the operations described in the embodiments of the present invention may be changed. Some components or features of one embodiment may be included in another embodiment or may be replaced with corresponding components or features of another embodiment. It is obvious that the claims may be combined to form an embodiment by combining claims that do not have an explicit citation relationship in the claims or as new claims by post-application correction.
- a base station may in some cases be performed by an upper node thereof. That is, it is obvious that various operations performed for communication with the terminal in a network including a plurality of network nodes including a base station may be performed by the base station or other network nodes other than the base station.
- a base station may be replaced by terms such as a fixed station, a Node B, an eNode B (eNB), an access point, and the like.
- the terminal may be replaced with terms such as a user equipment (UE), a mobile station (MS), and a mobile subscriber station (MSS).
- UE user equipment
- MS mobile station
- MSS mobile subscriber station
- Embodiments according to the present invention may be implemented by various means, for example, hardware, firmware, software, or a combination thereof.
- an embodiment of the present invention may include one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), FPGAs ( field programmable gate arrays), processors, controllers, microcontrollers, microprocessors, and the like.
- ASICs application specific integrated circuits
- DSPs digital signal processors
- DSPDs digital signal processing devices
- PLDs programmable logic devices
- FPGAs field programmable gate arrays
- processors controllers, microcontrollers, microprocessors, and the like.
- an embodiment of the present invention may be implemented in the form of a module, procedure, function, etc. that performs the functions or operations described above.
- the software code may be stored in a memory unit and driven by a processor.
- the memory unit may be located inside or outside the processor, and may exchange data with the processor by various known means.
- the present invention can be used in a terminal, base station, or other equipment of a wireless mobile communication system.
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Abstract
Description
| SCS (15*2^u) | N slot symb | N frame,u slot | N subframe,u slot |
| 15KHz (u=0) | 14 | 10 | 1 |
| 30KHz (u=1) | 14 | 20 | 2 |
| 60KHz (u=2) | 14 | 40 | 4 |
| 120KHz (u=3) | 14 | 80 | 8 |
| 240KHz (u=4) | 14 | 160 | 16 |
| SCS (15*2^u) | N slot symb | N frame,u slot | N subframe,u slot |
| 60KHz (u=2) | 12 | 40 | 4 |
| Type | Search Space | RNTI | Use Case |
| Type0-PDCCH | Common | SI-RNTI on a primary cell | SIB Decoding |
| Type0A-PDCCH | Common | SI-RNTI on a primary cell | SIB Decoding |
| Type1-PDCCH | Common | RA-RNTI or TC-RNTI on a primary cell | Msg2, Msg4 decoding in RACH |
| Type2-PDCCH | Common | P-RNTI on a primary cell | Paging Decoding |
| Type3-PDCCH | Common | INT-RNTI, SFI-RNTI, TPC-PUSCH-RNTI, TPC-PUCCH-RNTI, TPC-SRS-RNTI, C-RNTI, MCS-C-RNTI, or CS-RNTI(s) | |
| UE Specific | C-RNTI, or MCS-C-RNTI, or CS-RNTI(s) | User specific PDSCH decoding |
| DCI format | Usage |
| 0_0 | Scheduling of PUSCH in one cell |
| 0_1 | Scheduling of PUSCH in one cell |
| 1_0 | Scheduling of PDSCH in one cell |
| 1_1 | Scheduling of PDSCH in one cell |
| 2_0 | Notifying a group of UEs of the slot format |
| 2_1 | Notifying a group of UEs of the PRB(s) and OFDM symbol(s) where UE may assume no transmission is intended for the UE |
| 2_2 | Transmission of TPC commands for PUCCH and PUSCH |
| 2_3 | Transmission of a group of TPC commands for SRS transmissions by one or more UEs |
| PUCCH format | Length in OFDM symbols N PUCCH symb | Number of bits | Usage | Etc |
| 0 | 1 - 2 | =2 | HARQ, SR | Sequence selection |
| 1 | 4 - 14 | =2 | HARQ, [SR] | Sequence modulation |
| 2 | 1 - 2 | >2 | HARQ, CSI, [SR] | CP-OFDM |
| 3 | 4 - 14 | >2 | HARQ, CSI, [SR] | DFT-s-OFDM(no UE multiplexing) |
| 4 | 4 - 14 | >2 | HARQ, CSI, [SR] | DFT-s-OFDM(Pre DFT OCC) |
| PUCCH format 0 | PUCCH format 1 | PUCCH format 2 | PUCCH format 3 | PUCCH format 4 | ||
| Frequency resource of 2nd hop if frequency hopping is enabled | Value range | 0~274 | 0~274 | 0~274 | 0~274 | 0~274 |
| Index of initial cyclic shift | Configurability | O | O | X | X | X |
| Value range | 0~11 | 0~11 | - | - | - | |
| Index of time-domain OCC | Configurability | X | O | X | X | X |
| Value range | - | 0~6 | - | - | - | |
| Length of Pre-DFT OCC | Configurability | X | X | X | X | O |
| Value range | - | - | - | - | 2, 4 | |
| Index of Pre-DFT OCC | Configurability | X | X | X | X | O |
| Value range | - | - | - | - | 0~3 | |
| 4-bit RMSI | PUCCH duration | Stating symbol | K value(s) | Freq. hopping |
| 0000 | 2 | 12 | {0, 1} | {↑, ↓} |
| 0001 | 2 | 12 | {2, 3} | {↑, ↓} |
| 0010 | 2 | 12 | {4, 5} | {↑, ↓} |
| 0011 | 2 | 12 | {6, 7} | {↑, ↓} |
| 0100 | 4 | 5 | {0} | {↑, ↓} |
| 0101 | 4 | 5 | {1} | {↑, ↓} |
| 0110 | 4 | 5 | {2} | {↑, ↓} |
| 0111 | 4 | 5 | {3} | {↑, ↓} |
| 1000 | 10 | 2 | {0} | {↑, ↓} |
| 1001 | 10 | 2 | {1} | {↑, ↓} |
| 1010 | 10 | 2 | {2} | {↑, ↓} |
| 1011 | 10 | 2 | {3} | {↑, ↓} |
| 1100 | 14 | 0 | {0} | {↑, ↓} |
| 1101 | 14 | 0 | {1} | {↑, ↓} |
| 1110 | 14 | 0 | {2} | {↑, ↓} |
| 1111 | 14 | 0 | {3} | {↑, ↓} |
| 2-bit ARI | PUCCH F0 | PUCCH F1 | ||
| CS index | {K 1, K 2} | CS index | OCC index | |
| 00 | 0 | K 1 | 0 | 0 mod L |
| 01 | 0 | K 2 | 3 | 1 mod L |
| 10 | 3 | K 1 | 6 | 2 mod L |
| 11 | 3 | K 2 | 9 | 3 mod L |
| 1-bit implicit. | Freq. hopping |
| 0 | ↑ |
| 1 | ↓ |
| 4-bit RMSI | PUCCH duration | starting symbol | (cell specific)PRB 오프셋 |
| 0000 | 2 | 12 | 0 |
| 0001 | 2 | 12 | 2 |
| 0010 | 2 | 12 | 4 |
| 0011 | 2 | 12 | floor(N BWP/4) or 6 |
| 0100 | 4 | 10 | 0 |
| 0101 | 4 | 10 | 2 |
| 0110 | 4 | 10 | 4 |
| 0111 | 4 | 10 | floor(N BWP/4) or 6 |
| 1000 | 10 | 4 | 0 |
| 1001 | 10 | 4 | 2 |
| 1010 | 10 | 4 | 4 |
| 1011 | 10 | 4 | floor(N BWP/4) or 6 |
| 1100 | 14 | 0 | 0 |
| 1101 | 14 | 0 | 2 |
| 1110 | 14 | 0 | 4 |
| 1111 | 14 | 0 | floor(N BWP/4) or 6 |
| 3-bit ARI | PUCCH F0 | PUCCH F1 | ||||
| (UE-specific)PRB offset | FH direction | starting symbol index | (UE-specific)PRB offset | FH direction | CS index | |
| 000 | 0 | ↑ | 10 | 0 | ↑ | {0, 3} |
| 001 | 0 | ↑ | 12 | 0 | ↑ | {6, 9} |
| 010 | 0 | ↓ | 10 | 0 | ↓ | {0, 3} |
| 011 | 0 | ↓ | 12 | 0 | ↓ | {6, 9} |
| 100 | 1 | ↑ | 10 | 1 | ↑ | {0, 3} |
| 101 | 1 | ↑ | 12 | 1 | ↑ | {6, 9} |
| 110 | 1 | ↓ | 10 | 1 | ↓ | {0, 3} |
| 111 | 1 | ↓ | 12 | 1 | ↓ | {6, 9} |
| 1-bit implicit. | PUCCH F0 | PUCCH F1 |
| CS index | CS index | |
| 0 | 0 | CS 1 |
| 1 | 3 | CS 2 |
| 3-bit ARI (b 2b 1b 0) | CCE-based implicit 1-bit(c 0) | (UE-specific)PRB offset(b 2) | FH direction(b 1) | (initial) CS index(b 0, c 0) |
| 000 | 0 | 0 | ↑ | 0 |
| 1 | 3 | |||
| 001 | 0 | 6 | ||
| 1 | 9 | |||
| 010 | 0 | ↓ | 0 | |
| 1 | 3 | |||
| 011 | 0 | 6 | ||
| 1 | 9 | |||
| 100 | 0 | 1 | ↑ | 0 |
| 1 | 3 | |||
| 101 | 0 | 6 | ||
| 1 | 9 | |||
| 110 | 0 | ↓ | 0 | |
| 1 | 3 | |||
| 111 | 0 | 6 | ||
| 1 | 9 |
| RI(b 2b 1b 0) | CCE-based 1 bit(c 0) | second RB offset(b 2) | FH direction(b 1) | CS index(b 0, c 0) |
| 000 | 0 | 0 | 제1 방향 | 0 |
| 1 | 3 | |||
| 001 | 0 | 6 | ||
| 1 | 9 | |||
| 010 | 0 | 제2 방향 | 0 | |
| 1 | 3 | |||
| 011 | 0 | 6 | ||
| 1 | 9 | |||
| 100 | 0 | 1 | 제1 방향 | 0 |
| 1 | 3 | |||
| 101 | 0 | 6 | ||
| 1 | 9 | |||
| 110 | 0 | 제2 방향 | 0 | |
| 1 | 3 | |||
| 111 | 0 | 6 | ||
| 1 | 9 |
| 1-bit HARQ-ACK | 2-bits HARQ-ACK | |||||||||||
| Negative SR | Positive SR | Negative SR | Positive SR | |||||||||
| N | A | N | A | N, N | N, A | A, A | A, N | N, N | N, A | A, A | A, N | |
| CS | 0 | 6 | 3 | 9 | 0 | 3 | 6 | 9 | 1 | 4 | 7 | 10 |
| 1-bit HARQ-ACK | 2-bit HARQ-ACK | |||||||||||
| Negative SR | Positive SR | Negative SR | Positive SR | |||||||||
| N | A | N | A | N, N | N, A | A, A | A, N | N, N | N, A | A, A | A, N | |
| CS | 0 | 6 | 1 | 7 | 0 | 3 | 9 | 6 | 1 | 4 | 10 | 7 |
| 1-bit HARQ-ACK | 2-bit HARQ-ACK | |||||||||||
| Negative SR | Positive SR | Negative SR | Positive SR | |||||||||
| N | A | N | A | N, N | N, A | A, A | A, N | N, N | N, A | A, A | A, N | |
| CS | 0 | 6 | 1 | 7 | 0 | 3 | 6 | 9 | 1 | 4 | 7 | 10 |
Claims (20)
- 무선 통신 시스템에서 통신 장치가 제어 정보를 전송하는 방법에 있어서,시스템 정보를 통해 특정 PUCCH(Physical Uplink Control Channel) 포맷의 PUCCH 자원 세트에 관한 지시 정보를 수신하되, 상기 PUCCH 자원 세트는 제1 RB(Resource Block) 오프셋을 포함하는 단계;자원 지시 정보(RI)를 포함하는 PDCCH(Physical Downlink Control Channel)를 하나 이상의 CCE(Control Channel Element) 상에서 수신하는 단계; 및상기 제어 정보를 PUCCH를 통해 전송하는 단계를 포함하고,상기 PUCCH의 RB 인덱스는 상기 제1 RB 오프셋과 상기 RI의 제1 비트 값과 관련된 제2 RB 오프셋에 기반하여 결정되고,상기 PUCCH의 CS 인덱스는 CS 인덱스 세트 중에서 [상기 RI의 제2 비트 값, 상기 PDCCH의 시작 CCE 인덱스에 기반한 1 비트 값 (이하, CCE-기반 1 비트 값)]의 조합에 기반하여 결정되는 방법.
- 제1항에 있어서,상기 RI의 제2 비트 값은 2개의 CS 인덱스 그룹 중 하나를 지시하는데 사용되고, 상기 CCE-기반 1 비트 값은 상기 지시된 CS 인덱스 그룹 내의 2개의 CS 인덱스 중 하나를 지시하는데 사용되는 방법.
- 제1항에 있어서,상기 PUCCH의 주파수 호핑 방향은 상기 RI의 제3 비트 값에 기반하여 둘 중 하나로 결정되는 방법.
- 제1항에 있어서,상기 제어 정보는 상기 PDCCH의 의해 스케줄링 된 하향링크 데이터에 대한 ACK/NACK(Acknowledgement/Negative Acknowledgement)를 포함하는 방법.
- 무선 통신 시스템에 사용되는 통신 장치에 있어서,메모리; 및프로세서를 포함하고, 상기 프로세서는,시스템 정보를 통해 특정 PUCCH(Physical Uplink Control Channel) 포맷의 PUCCH 자원 세트에 관한 지시 정보를 수신하되, 상기 PUCCH 자원 세트는 제1 RB(Resource Block) 오프셋을 포함하고,자원 지시 정보(RI)를 포함하는 PDCCH(Physical Downlink Control Channel)를 하나 이상의 CCE(Control Channel Element) 상에서 수신하며,제어 정보를 PUCCH를 통해 전송하도록 구성되고,상기 PUCCH의 RB 인덱스는 상기 제1 RB 오프셋과 상기 RI의 제1 비트 값과 관련된 제2 RB 오프셋에 기반하여 결정되고,상기 PUCCH의 CS 인덱스는 CS 인덱스 세트 중에서 [상기 RI의 제2 비트 값, 상기 PDCCH의 시작 CCE 인덱스에 기반한 1 비트 값 (이하, CCE-기반 1 비트 값)]의 조합에 기반하여 결정되는 통신 장치.
- 제6항에 있어서,상기 RI의 제2 비트 값은 2개의 CS 인덱스 그룹 중 하나를 지시하는데 사용되고, 상기 CCE-기반 1 비트 값은 상기 지시된 CS 인덱스 그룹 내의 2개의 CS 인덱스 중 하나를 지시하는데 사용되는 통신 장치.
- 제6항에 있어서,상기 PUCCH의 주파수 호핑 방향은 상기 RI의 제3 비트 값에 기반하여 둘 중 하나로 결정되는 통신 장치.
- 제6항에 있어서,상기 제어 정보는 상기 PDCCH의 의해 스케줄링 된 하향링크 데이터에 대한 ACK/NACK(Acknowledgement/Negative Acknowledgement)를 포함하는 통신 장치.
- 무선 통신 시스템에서 통신 장치가 제어 정보를 수신하는 방법에 있어서,시스템 정보를 통해 특정 PUCCH(Physical Uplink Control Channel) 포맷의 PUCCH 자원 세트에 관한 지시 정보를 전송하되, 상기 PUCCH 자원 세트는 제1 RB(Resource Block) 오프셋을 포함하는 단계;자원 지시 정보(RI)를 포함하는 PDCCH(Physical Downlink Control Channel)를 하나 이상의 CCE(Control Channel Element) 상에서 전송하는 단계; 및상기 제어 정보를 PUCCH를 통해 수신하는 단계를 포함하고,상기 PUCCH의 RB 인덱스는 상기 제1 RB 오프셋과 상기 RI의 제1 비트 값과 관련된 제2 RB 오프셋에 기반하여 결정되고,상기 PUCCH의 CS 인덱스는 CS 인덱스 세트 중에서 [상기 RI의 제2 비트 값, 상기 PDCCH의 시작 CCE 인덱스에 기반한 1 비트 값 (이하, CCE-기반 1 비트 값)]의 조합에 기반하여 결정되는 방법.
- 제11항에 있어서,상기 RI의 제2 비트 값은 2개의 CS 인덱스 그룹 중 하나를 지시하는데 사용되고, 상기 CCE-기반 1 비트 값은 상기 지시된 CS 인덱스 그룹 내의 2개의 CS 인덱스 중 하나를 지시하는데 사용되는 방법.
- 제11항에 있어서,상기 PUCCH의 주파수 호핑 방향은 상기 RI의 제3 비트 값에 기반하여 둘 중 하나로 결정되는 방법.
- 제11항에 있어서,상기 제어 정보는 상기 PDCCH의 의해 스케줄링 된 하향링크 데이터에 대한 ACK/NACK(Acknowledgement/Negative Acknowledgement)를 포함하는 방법.
- 무선 통신 시스템에 사용되는 통신 장치에 있어서,메모리; 및프로세서를 포함하고, 상기 프로세서는,시스템 정보를 통해 특정 PUCCH(Physical Uplink Control Channel) 포맷의 PUCCH 자원 세트에 관한 지시 정보를 전송하되, 상기 PUCCH 자원 세트는 제1 RB(Resource Block) 오프셋을 포함하고,자원 지시 정보(RI)를 포함하는 PDCCH(Physical Downlink Control Channel)를 하나 이상의 CCE(Control Channel Element) 상에서 전송하며,제어 정보를 PUCCH를 통해 수신하도록 구성되고,상기 PUCCH의 RB 인덱스는 상기 제1 RB 오프셋과 상기 RI의 제1 비트 값과 관련된 제2 RB 오프셋에 기반하여 결정되고,상기 PUCCH의 CS 인덱스는 CS 인덱스 세트 중에서 [상기 RI의 제2 비트 값, 상기 PDCCH의 시작 CCE 인덱스에 기반한 1 비트 값 (이하, CCE-기반 1 비트 값)]의 조합에 기반하여 결정되는 통신 장치.
- 제16항에 있어서,상기 RI의 제2 비트 값은 2개의 CS 인덱스 그룹 중 하나를 지시하는데 사용되고, 상기 CCE-기반 1 비트 값은 상기 지시된 CS 인덱스 그룹 내의 2개의 CS 인덱스 중 하나를 지시하는데 사용되는 통신 장치.
- 제16항에 있어서,상기 PUCCH의 주파수 호핑 방향은 상기 RI의 제3 비트 값에 기반하여 둘 중 하나로 결정되는 통신 장치.
- 제16항에 있어서,상기 제어 정보는 상기 PDCCH의 의해 스케줄링 된 하향링크 데이터에 대한 ACK/NACK(Acknowledgement/Negative Acknowledgement)를 포함하는 통신 장치.
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- 2019-02-14 KR KR1020197005770A patent/KR102069072B1/ko active Active
- 2019-02-14 KR KR1020197031709A patent/KR102109412B1/ko active Active
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| US10588113B2 (en) | 2020-03-10 |
| US20200137743A1 (en) | 2020-04-30 |
| CN111373689B (zh) | 2023-04-04 |
| US20190297618A1 (en) | 2019-09-26 |
| KR20190123814A (ko) | 2019-11-01 |
| EP3664349B1 (en) | 2022-03-30 |
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| US20200137742A1 (en) | 2020-04-30 |
| KR20190099387A (ko) | 2019-08-27 |
| EP3664349A4 (en) | 2020-12-02 |
| JP7013568B2 (ja) | 2022-01-31 |
| KR102109412B1 (ko) | 2020-05-12 |
| US10856269B2 (en) | 2020-12-01 |
| USRE49915E1 (en) | 2024-04-09 |
| CN116318248A (zh) | 2023-06-23 |
| EP4009568B1 (en) | 2023-11-29 |
| JP2020532921A (ja) | 2020-11-12 |
| EP4009568A1 (en) | 2022-06-08 |
| KR102069072B1 (ko) | 2020-01-22 |
| US11006394B2 (en) | 2021-05-11 |
| EP3664349A1 (en) | 2020-06-10 |
| CN116318248B (zh) | 2024-06-07 |
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